Electrochemical Detection of Circadian Redox Rhythm in Cyanobacterial Cells via Extracellular Electron Transfer

Plant Cell Physiol. 2015 Jun;56(6):1053-8. doi: 10.1093/pcp/pcv066. Epub 2015 May 14.

Abstract

Recent research on cellular circadian rhythms suggests that the coupling of transcription-translation feedback loops and intracellular redox oscillations is essential for robust circadian timekeeping. For clarification of the molecular mechanism underlying the circadian rhythm, methods that allow for the dynamic and simultaneous detection of transcription/translation and redox oscillations in living cells are needed. Herein, we report that the cyanobacterial circadian redox rhythm can be electrochemically detected based on extracellular electron transfer (EET), a process in which intracellular electrons are exchanged with an extracellular electrode. As the EET-based method is non-destructive, concurrent detection with transcription/translation rhythm using bioluminescent reporter strains becomes possible. An EET pathway that electrochemically connected the intracellular region of cyanobacterial cells with an extracellular electrode was constructed via a newly synthesized electron mediator with cell membrane permeability. In the presence of the mediator, the open circuit potential of the culture medium exhibited temperature-compensated rhythm with approximately 24 h periodicity. Importantly, such circadian rhythm of the open circuit potential was not observed in the absence of the electron mediator, indicating that the EET process conveys the dynamic information regarding the intracellular redox state to the extracellular electrode. These findings represent the first direct demonstration of the intracellular circadian redox rhythm of cyanobacterial cells.

Keywords: Circadian clock; Cyanobacteria; Electrochemistry; Extracellular electron transfer; Redox rhythm.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Circadian Rhythm*
  • Electrochemical Techniques / methods*
  • Electron Transport
  • Extracellular Space / metabolism*
  • Fluorescence
  • Oxidation-Reduction
  • Photosystem II Protein Complex / metabolism
  • Proton-Motive Force
  • Synechococcus / cytology*
  • Synechococcus / metabolism*
  • Temperature
  • Time Factors

Substances

  • Photosystem II Protein Complex